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A Novel Continuous Learning and Collaborative Decision Making Mechanism for Real-Time Cooperation of Humanoid Service Robots

机译:一种新型的仿人服务机器人实时协作的持续学习与协作决策机制

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摘要

This paper introduces and proposes a novel Continuous Learning and Collaborative Decision Making (CLCDM) mechanism to support the real-time cooperation of affective humanoid service robots in smart home/campus environment, in which many highly complicated and intelligence demanding applications, such as homecare and children education are either currently partly assisted or expected to be fully provided in the future by the collaborations of intelligent and affective humanoid robots. The core of the CLCDM approach is a streaming data analytics framework, which incorporates Big Data Analytics facilities and decision making under uncertainty techniques to facilitate the provision of CLCDM capability for affective humanoid service robots to succeed in serving human users needs. An experimental case study is conducted to validate a prototype implementation of the CLCDM approach and the preliminary result demonstrates the feasibility and effectiveness of the promising approach.
机译:本文介绍并提出了一种新颖的持续学习和协作决策(CLCDM)机制,以支持情感人形化服务机器人在智能家居/校园环境中的实时协作,在该机器人中,许多高度复杂且对智能要求很高的应用(例如家庭护理和当前,智能教育和情感人形机器人的协作将部分或完全将来提供儿童教育。 CLCDM方法的核心是流数据分析框架,该框架结合了大数据分析功能和不确定性技术下的决策,以促进为情感人形服务机器人提供CLCDM功能,从而成功满足人类用户的需求。进行了一个实验案例研究,以验证CLCDM方法的原型实现,初步结果证明了该有前途的方法的可行性和有效性。

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